Manufacturing method for double-sided adhesive material, and article provided with double-sided adhesive material
09649790 ยท 2017-05-16
Assignee
Inventors
Cpc classification
B29C35/0894
PERFORMING OPERATIONS; TRANSPORTING
B29L2007/001
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/2809
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B29C31/044
PERFORMING OPERATIONS; TRANSPORTING
B31D1/02
PERFORMING OPERATIONS; TRANSPORTING
B29C41/08
PERFORMING OPERATIONS; TRANSPORTING
B29C41/02
PERFORMING OPERATIONS; TRANSPORTING
B29C35/08
PERFORMING OPERATIONS; TRANSPORTING
B29C41/365
PERFORMING OPERATIONS; TRANSPORTING
C09J2301/124
CHEMISTRY; METALLURGY
International classification
Abstract
To provide a method for manufacturing a double-sided adhesive material suitable for the size and shape of various articles using a simple process without reducing the yield of the adhesive material that is used, and to provide an article with a double-sided adhesive material that uses the double-sided adhesive material obtained by this manufacturing method. [Resolution means] Liquid photo curing adhesive 12 is applied by direct drawing onto a specific region corresponding to the size and shape of an article to be used, on the surface of a first plate 10, using a robot. A sheet shaped second plate 20 is placed on the first plate 10 where the adhesive 12 was applied, such that the adhesive 12 is interposed between both plates. Light for curing the adhesive is then irradiated from both sides of the adhesive 12 so that the light will pass through both the first plate 10 and the second plate 20 and reach the adhesive 12.
Claims
1. A method for manufacturing a double-sided adhesive material for attaching an article to a subject, comprising: a step of applying a photo curing adhesive by direct drawing onto a specific region that corresponds to a shape of the article on one surface of a sheet shaped first transparent member using a robot equipped with a nozzle for spraying an adhesive solution, the robot being able to move in at least two dimensions; a step of placing a sheet shaped second transparent member onto the first transparent member with the adhesive that had been applied onto the surface of the first transparent member interposed therebetween so as to sandwich the adhesive between the first transparent member and the second transparent member, after the step of applying the photo curing adhesive; a step of irradiating light onto and curing the adhesive that was applied to the surface of the first transparent member, wherein light is irradiated from both sides of the adhesive so that light passes through both the first transparent member and the second transparent member and reaches the adhesive; and a step of removing the cured adhesive from the surface of the first transparent member to obtain a double-sided adhesive material.
2. The manufacturing method for the double-sided adhesive material according to claim 1, wherein the photo curing adhesive is an ultraviolet light curing acrylic adhesive.
Description
BRIEF DESCRIPTION OF THE DRAWING(S)
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DETAILED DESCRIPTION
(6) A manufacturing method for a double-sided adhesive material that is used for attaching an article to a subject is described as a nonlimiting embodiment of the present invention while referring to the drawings. First, a sheet shaped first transparent member 10 is prepared and positioned essentially horizontally, as shown in
(7) Next, liquid photo curing adhesive (hereinafter simply referred to as adhesive) 12 is applied by direct drawing onto a specific region corresponding to a size and shape of the article to be used, on the surface of the first plate 10, using a robot. Herein, the term robot refers to a device that can automatically control movement such as two-dimensional or three-dimensional position, travel speed, travel direction, and the like. The robot used herein has a nozzle for spraying the adhesive solution, and can automatically control the position of the nozzle relative to the first plate in at least two dimensions. This robot can be a device with a fixed position nozzle for spraying solution and a carriage that can move in the XY direction, a nozzle for spraying solution that can move in the X direction and a carriage that can move in the Y direction, or a nozzle for spraying that can move in the XY direction and a carriage with a fixed position, and that can control the amount of travel, travel speed, and amount of solution sprayed using a program.
(8) For example, a robot 14 with a robot arm 18 mounted with a nozzle 16 for spraying adhesive attached on the tip end is provided, and the robot 14 is controlled such that the spray port of the nozzle moves along a travel path corresponding to the contour shape of the article, and adhesive is applied onto the surface of the first plate 10 through direct drawing by spraying adhesive at a predetermined flow rate from the spray port of the nozzle 16.
(9) An example of a photo curing adhesive 12 is an acrylic adhesive that is cured by ultraviolet light. Specifically, acrylic adhesives can be used that include additives such as fillers, colorants, antioxidants, and the like in a copolymer obtained by photo polymerizing a blended solution containing one or more type of component selected from butyl acrylate, hexyl acrylate, 2-ethyl hexyl acrylate, octyl acrylate, iso-octyl acrylate, nonyl acrylate, isononyl acrylate, stearyl acrylate, isostearyl acrylate, decyl acrylate, dodecyl acrylate, isobornyl acrylate, benzyl acrylate, phenoxy ethyl acrylate, and other alkyl (meth)acrylate monomers, acrylic acid, N-dimethyl acrylamide, N-vinyl caprolactam, N-vinyl pyrrolidone, N-vinyl piperidine, acryloyol morpholin, and other co-polymeric vinyl monomers.
(10) Next, as illustrated in
(11) Herein, as illustrated in side cross-section view 3, a spacer 22 can be provided in advance in order to create an interval of a predetermined distance between both plates prior to overlaying the second plate 20 on the first plate 10. The thickness of the adhesive during application can be adjusted by adjusting the viscosity of the adhesive that is used, but the thickness of the gap between the first plate 10 and the second plate 20 can be made uniform across the entire surface of the plate when performing the photo curing described below by using a spacer 22, and thus the thickness of the adhesive material after photo curing can be made uniform. Moreover, the thickness of the spacer 22 can be arbitrarily set depending on the predetermined thickness of the adhesive material, and for example can be 0.2 mm or more, 0.4 mm or more, or 0.6 mm or more, and 1.0 mm or less, 1.5 mm or less, or 2.0 mm or less.
(12) The adhesive 12 preferably has a certain level of viscosity that allows a predetermined shape to be generally maintained without flowing until the ultraviolet light curing described below is performed. Specifically, the viscosity is 2 Pa-s or higher for example. Moreover, the viscosity is more preferably 6 Pa-s or higher, and particularly preferably 8 Pa-s or higher. The viscosity of the adhesive can be controlled by adding a thixotropy contributing material or by increasing the amount of polymer content in the adhesive. Furthermore, a hollow glass filler or silica filler may be added to the adhesive 12 in order to provide the desired cushioning to the double-sided adhesive material that is eventually obtained. Furthermore, the viscosity of the adhesive can also be increased by adding these fillers.
(13) As illustrated in
(14) Moreover, as illustrated in
(15) With the embodiment of the present invention, the adhesive can be applied by directly drawing in a specified region that corresponds to the shape of each article using a robot. Therefore, the size and shape of the adhesive can be arbitrarily set without using a pattern such as with screen printing. Therefore, even if the article has a specific shape, double-sided adhesive material that corresponds to the optimum shape for attaching the article to the subject can be achieved. Furthermore, the photo curing adhesive is positioned on a transparent plate without directly applying to the article, and therefore the subsequent photo curing step can be easily and properly performed. Furthermore, unlike the case of using double-sided adhesive tape that causes considerable waste, the adhesive that is applied is theoretically used entirely as an adhesive material. Therefore, almost no waste is generated, which is extremely advantageous both from a cost perspective and an environmental perspective.
(16) The double-sided adhesive material obtained in this manner is attached to the back surface of the article, and can be used for attaching the article to the subject. Examples of this type of article can include but are not limited to emblems, nameplates, side-quarter glass, slide rails, bumper molds, door hole seals, portions of mirrors such as side mirrors, and the like that are attached to the chassis of an automobile. Furthermore, the subject is not restricted to automobiles, and various types of electrical products, furniture, and other subjects can also be included as examples. The double-sided adhesive material of the present embodiment can be used for attaching various diverse types of articles to various types of subjects.
Working Example
(17) Hereinafter, the manufacturing method for a double-sided adhesive material that is used for attaching an article of the present invention to a subject is described as a nonlimiting working example. First, 90 parts by weight of 2-ethyl hexyl acrylate (2-EHA) produced by Nippon Catalyst, 10 parts by weight of acrylic acid produced by Mitsubishi Chemical, and 0.05 parts by weight of a photoinitiator (Irgacure 651) produced by CIBA Specialty Chemicals were blended together and the mixture was irradiated with ultraviolet light until the viscosity of the mixture obtained was 2 Pa-s. Next, 100 parts by weight of this mixture, 0.1 parts by weight of the photoinitiator (Irgacure 651) produced by CIBA Specialty Chemicals, 1.5 parts by weight of silica filler (A200) produced by Nippon Aerosyl, 5.0 parts by weight of hollow glass filler (glass bubbles) produced by 3M, and 0.1 parts by weight of an acrylic cross-linking agent (HDDA) produced by Shin-Nakamura Chemical Co., Ltd. were blended together to obtain an acrylic ultraviolet light curing adhesive in solution form. Moreover, the viscosity of this adhesive was 8 Pa-s (8000 cps).
(18) Next, the first plate was prepared by applying 50 m thick polyethylene terephthalate (PET) that was silicone treated on the surface onto a 5 mm thick glass substrate, and then placed on a horizontal surface. The adhesive was applied by direct drawing onto a specific region corresponding to the shape of the article on the PET surface of the first plate using a robot. The robot was a coating shape controlling robot (2200 Nmini) manufactured by San-ei Tech Ltd., equipped with a dispense controller (Performus V) manufactured by Nordson EFD and a dispense valve which is a nozzle for spraying adhesive (725 DA-SS Fluid Chamber). The adhesive was applied by direct drawing onto a specific region of the first plate at a rate of 50 mm/second corresponding to the contour of the article with a line thickness of approximately 3 mm. Moreover, the thickness of the adhesive was adjusted to approximately 0.8 mm.
(19) Spacers formed from a 0.8 mm thick stainless steel sheet were then placed around the outside of the application area on the PET surface of the first plate. The second plate made by applying a silicon peel treated PET film on a glass substrate similar to the first plate was placed on the first plate such that the PET surfaces were facing each other with the spacers and adhesive interposed therebetween, and thus the adhesive was sandwiched between the first plate and the second plate.
(20) Ultraviolet light was then irradiated onto the adhesive from both sides through the first and second plates in order to cure the adhesive. Moreover, the ultraviolet light irradiating device was a UV lamp (VC 7692T12) produced by Sylvania. The amount of irradiated ultraviolet light was 1 J. Finally, the glass substrates of the first and second glass plates were removed to obtain a double-sided adhesive material sandwiched between PET films.
(21) The PET film was then peeled from one side of the double-sided adhesive material, and the exposed adhesive surface was applied to the back surface of the article to obtain an article with adhesive material attached.
DESCRIPTION OF REFERENCE SYMBOLS
(22) 10 and 20: Transparent plate 12: Adhesive 14: Robot 22: Spacer 24: Article.